4.8 Article

Extraordinary acidic oxygen evolution on new phase 3R-iridium oxide

期刊

JOULE
卷 5, 期 12, 页码 3221-3234

出版社

CELL PRESS
DOI: 10.1016/j.joule.2021.10.002

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资金

  1. National MCF Energy R&D Program of China [2018YFE0306105]
  2. National Key R&D Program of China [2020YFA0406104, 2020YFA0406101]
  3. Innovative Research Group Project of the National Natural Science Foundation of China [51821002]
  4. National Natural Science Foundation of China [51725204, 21771132, 51972216, 52041202, 21771134, 21905188]
  5. Natural Science Foundation of Jiangsu Province [BK20190041]
  6. Key Area Research and Development Program of Guangdong Province [2019B010933001]
  7. Collaborative Innovation Center of Suzhou Nano Science and Technology
  8. 111 Project
  9. Development Program of China [2017YFA0204800]
  10. National MCF Energy RD Program [2018YFE0306105]
  11. China Postdoctoral Science Foundation [2019M651937]
  12. Guangdong Provincial Key Laboratory of Energy Materials for Electric Power [2018B030322001]
  13. Priority Academic Program Development of Jiangsu Higher Education Institutions (PAPD)
  14. Joint International Research Laboratory of Carbon-Based Functional Materials and Devices

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This study demonstrated the successful preparation of a new 3R phase IrO2 using a microwave-assisted mechano-thermal method, showing its outstanding catalytic activity and stability for oxygen evolution reaction in acidic electrolyte.
Electrochemical water splitting provides a green pathway for hydrogen generation, while iridium oxide (IrO2) is almost the only stable anode catalyst for acidic media. Yet, it is still a huge challenge to develop an efficient IrO2 catalyst. Here, we demonstrate a microwave-assisted mechano-thermal method that achieves a new 3R phase IrO2. This 3R-IrO2 achieves an ultralow overpotential of 188 mV at the current density of 10 mA cm(geo)(-2) and a notably high turnover frequency of 5.7 s(UPD)(-1) at 1.50 V versus reversible hydrogen electrode. It also endures limited decay under the current density of 10mA cm(geo)(-2) for 511 h prolong test in acidic electrolyte. The new active sites of the edge-sharing structure in 3R-IrO2 and the fast proton transportation along interlayers and intralayers through iridium vacancies contribute to the extraordinary acidic oxygen evolution reaction (OER) activity and stability. This work highlights the great potential of new metastable materials toward advanced electrocatalysis.

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